Signal dynamics and interactions during flooding stress

Publication date

2018-02

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Sasidharan, RashmiISNI 0000000419434781
Hartman, SjonORCID 0000-0002-6709-6436ISNI 0000000492529146
Liu, ZeguangISNI 0000000506024617
Martopawiro, ShaniceISNI 0000000506025329
Sajeev, NikitaISNI 0000000506048029
van Veen, HansISNI 0000000396570835
Yeung, ElaineISNI 0000000419577176
Voesenek, Laurentius A. C. J.ISNI 0000000393162721

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Abstract

Flooding is detrimental for nearly all higher plants, including crops. The compound stress elicited by slow gas exchange and low light levels under water is responsible for both a carbon and an energy crisis ultimately leading to plant death. The endogenous concentrations of four gaseous compounds, oxygen, carbon dioxide, ethylene, and nitric oxide, change during the submergence of plant organs in water. These gases play a pivotal role in signal transduction cascades, leading to adaptive processes such as metabolic adjustments and anatomical features. Of these gases, ethylene is seen as the most consistent, pervasive, and reliable signal of early flooding stress, most likely in tight interaction with the other gases. The production of reactive oxygen species (ROS) in plant cells during flooding and directly after subsidence, during which the plant is confronted with high light and oxygen levels, is characteristic for this abiotic stress. Low, well-controlled levels of ROS are essential for adaptive signaling pathways, in interaction with the other gaseous flooding signals. On the other hand, excessive uncontrolled bursts of ROS can be highly damaging for plants. Therefore, a fine-tuned balance is important, with a major role for ROS production and scavenging. Our understanding of the temporal dynamics of the four gases and ROS is basal, whereas it is likely that they form a signature readout of prevailing flooding conditions and subsequent adaptive responses.

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Sasidharan, R, Hartman, S, Liu, Z, Martopawiro, S, Sajeev, N, van Veen, H, Yeung, E & Voesenek, L A C J 2018, 'Signal dynamics and interactions during flooding stress', Plant Physiology, vol. 176, no. 2, pp. 1106-1117. https://doi.org/10.1104/pp.17.01232